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纳米系统中的跨导特性研究

Surface Properties from Transconductance in Nanoscale Systems.

机构信息

Centre for Advanced Nanotechnology, University of Toronto , 170 College Street, Toronto, Ontario M5S 3E4, Canada.

Department of Materials Science and Engineering, University of Toronto , 184 College Street, Toronto, Ontario M5S 3E4, Canada.

出版信息

Nano Lett. 2016 Oct 12;16(10):6028-6035. doi: 10.1021/acs.nanolett.6b01800. Epub 2016 Sep 7.

Abstract

Because of the continued scaling of transistor dimensions and incorporation of nanostructured materials into modern electronic and optoelectronic devices, surfaces and interfaces have become a dominant factor dictating material properties and device performance. In this study, we investigate the temperature-dependent electronic transport properties of InAs nanowire field-effect transistors. A point where the nanowire conductance becomes independent of temperature is observed, known as the zero-temperature-coefficient. The distribution of surface states is determined by a spectral analysis of the conductance activation energy and used to develop a carrier transport model that explains the existence and gate voltage dependence of this point. We determine that the position of this point in gate voltage is directly related to the fixed oxide charge on the nanowire surface and demonstrate the utility of this method for studying surface passivations in nanoscale systems by characterizing (NH)S and H plasma surface treatments on InAs nanowires.

摘要

由于晶体管尺寸的不断缩小以及纳米结构材料在现代电子和光电子设备中的应用,表面和界面已成为决定材料性能和器件性能的主导因素。在这项研究中,我们研究了 InAs 纳米线场效应晶体管的温度相关电子输运性质。观察到纳米线电导随温度变化的一个点,称为零温度系数。通过对电导激活能的谱分析确定了表面态的分布,并用于建立一个解释该点存在及其与栅极电压关系的载流子输运模型。我们确定该点在栅极电压中的位置与纳米线表面固定氧化物电荷直接相关,并通过对 InAs 纳米线的(NH)S 和 H 等离子体表面处理来研究纳米尺度系统中的表面钝化,展示了这种方法的实用性。

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